Exponential Lifetime Improvement in Topological Quantum Memories
arXiv:1512.04528 · doi:10.1103/PhysRevB.94.094303
Abstract
We propose a simple yet efficient mechanism for passive error correction in topological quantum memories. Our scheme relies on driven-dissipative ancilla systems which couple to local excitations (anyons) and make them "sink" in energy, with no required interaction among ancillae or anyons. Through this process, anyons created by some thermal environment end up trapped in potential "trenches" that they themselves generate, which can be interpreted as a "memory foam" for anyons. This self-trapping mechanism provides an energy barrier for anyon propagation, and removes entropy from the memory by favoring anyon recombination over anyon separation (responsible for memory errors). We demonstrate that our scheme leads to an exponential increase of the memory-coherence time with system size , up to an upper bound which can increase exponentially with , where is the temperature and is some energy scale defined by potential trenches. This results in a double exponential increase of the memory time with , which greatly improves over the Arrhenius (single-exponential) scaling found in typical quantum memories.
18 pages including appendices; 8 figures
References in corpus (18)
- Surface codes: Towards practical large-scale quantum computation
- Resolving photon number states in a superconducting circuit
- Local stabilizer codes in three dimensions without string logical operators
- Qubit-photon interactions in a cavity: Measurement induced dephasing and number splitting
- Experimental Quantum Computations on a Topologically Encoded Qubit
- A no-go theorem for a two-dimensional self-correcting quantum memory based on stabilizer codes
- Autocorrelations and Thermal Fragility of Anyonic Loops in Topologically Quantum Ordered Systems
- Quantum memories based on engineered dissipation
- On thermalization in Kitaev's 2D model
- Fault-tolerant logical gates in quantum error-correcting codes
- Induced self-stabilization in fractional quantum Hall states of light
- Dissipation in circuit quantum electrodynamics: lasing and cooling of a low-frequency oscillator
- Passive correction of quantum logical errors in a driven, dissipative system: a blueprint for an analog quantum code fabric
- 3-d topological quantum memory with a power-law energy barrier
- Monte Carlo studies of the properties of the Majorana quantum error correction code: is self-correction possible during braiding?
- Quantum Self-Correcting Stabilizer Codes
- Can long-range interactions stabilize quantum memory at nonzero temperature?
- 3-d quantum stabilizer codes with a power law energy barrier
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- Topological Order and Memory Time in Marginally Self-Correcting Quantum Memory
- Towards dark space stabilization and manipulation in driven dissipative Majorana platforms
- Engineering autonomous error correction in stabilizer codes at finite temperature
- Stable quantum memories with limited measurement
- Disorder-protected topological entropy after a quantum quench
- Monte Carlo studies of modified scalable designs for quantum computation